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traditional graphic."/> Schematic illustration of the explained variance of CLABSI, bubble graphic.

      Step 13: Respecify (Correct, Refine, and/or Expand) the Measurement Model

Schematic illustration of the model 1 to measure new charge nurse performance. Schematic illustration of the model 2, respecified with new predictor variables to measure new charge nurse performance.

      Note also that in structural models such as Figures 1.4 and 1.5, we have rectangles that look like they are representing one variable, when in many cases they represent multiple variables. For example, the rectangle labeled “Demographics” in both figures might be representing a dozen or so variables. These smaller, more compact models, which appear throughout this book, are called over‐aggregated structural models. Remember when you see them that what looks like a model testing three or four variables is actually testing dozens of variables at the same time.

      Step 14: Repeat Steps 2–13 if Explained Variance Declines

      As practice changes are implemented based on the information that emerges, variables from the initial model will no longer predict the variable of interest because the problem (or part of the problem) will have been solved by the practice changes. Traditionally, the analyst would then have to start over and develop a new model, but in this case, much of the work has already been done when developing the initial full model that is graphically depicted in Figure 1.1. As you return to Step 2, you will review the existing full model and rerun all the analytics to identify existing predictor variables that have now become an issue due to the new practice changes and/or identify new variables that relate to the variable of interest.

      Step 15: Interface and Automate

       A program can be written for automatic respecification of the model as operations of clinical care improve.

      Step 16: Write Predictive Mathematical Formulas to Proactively Manage the Variable of Interest

      Over time, the analyses from models used to study how specific variables

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